Bosco G, Eian J, Poppele R E
Department of Neuroscience, University of Rome, Tor Vergata and IRCCS Fondazione Santa Lucia, Rome, Italy.
Exp Brain Res. 2005 Dec;167(3):394-403. doi: 10.1007/s00221-005-0033-y. Epub 2005 Oct 28.
Previous work from this laboratory has shown that activity in the dorsal spinocerebellar tract (DSCT) relates strongly to global hindlimb kinematics variables during passive displacements of the hindlimb. A linear relationship to limb axis orientation and length variables accounts for most of the response variance for passive limb positioning and movement. Here we extend those observations to more natural movements by examining the information carried by the DSCT during passive stepping movements on a treadmill, and we compare it to information transmitted during passive robot-driven hindlimb movements. Using a principal component analysis approach, we found that a linear relationship between the responses and hindlimb kinematics was comparable across experimental conditions. We also observed systematic non-linearities in this relationship for both types of movement that could be attributed to events corresponding to the touch-down and lift-off phases of the movement. We concluded that proprioceptive information transmitted to the cerebellum by the DSCT during locomotion has at least two major components. One component is associated with limb kinematics (limb orientation) and may be more or less related to the metrics of the step (stride length, for example) or its velocity. The other component is associated with limb length and/or limb loading, and it may signal some aspect of limb stiffness.
该实验室之前的研究表明,在被动后肢位移过程中,背侧脊髓小脑束(DSCT)的活动与后肢整体运动学变量密切相关。与肢体轴方向和长度变量的线性关系解释了被动肢体定位和运动的大部分反应方差。在此,我们通过研究在跑步机上被动踏步运动期间DSCT所携带的信息,将这些观察结果扩展到更自然的运动中,并将其与被动机器人驱动后肢运动期间传输的信息进行比较。使用主成分分析方法,我们发现不同实验条件下,反应与后肢运动学之间的线性关系具有可比性。我们还观察到,这两种运动类型在这种关系中都存在系统性的非线性,这可能归因于与运动的触地和离地阶段相对应的事件。我们得出结论,在运动过程中,DSCT传输到小脑的本体感觉信息至少有两个主要成分。一个成分与肢体运动学(肢体方向)相关,可能或多或少与步幅(例如步长)或其速度的度量有关。另一个成分与肢体长度和/或肢体负荷相关,可能表示肢体刚度的某些方面。